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What correlations can be drawn about the difference in electronegativity between bonded atoms and their tendency to form ionic or covalent bonds?

2007-04-13 04:18:16 · 4 answers · asked by Anonymous in Science & Mathematics Chemistry

4 answers

Well, if there exists a large difference in electronegativity between two atoms, an ionic bond will be created since these atoms will be bonded by their affinity towards each other, like + and - poles on a magnet.

When there is a lower difference in electronegativity, the bonds formed will be held together by the mutual affinity for shared electrons, kinda like 2 people helping each other out. That is a covalent bond. The type of bond formes, ionic or covalent, is determined by the difference in electronegativity between the two atoms.

2007-04-13 04:29:23 · answer #1 · answered by shagohod77 2 · 1 0

easily, each and every bond is in part ionic and in part covalent because electrons are always shared a minimum of somewhat (that's a query of ways a lot relative time the electron spends with each and each and every nucleus), yet it really is probably previous the scope of your question. you want to seem on the version in negativities. If there's a distinction in electronegativity between both atoms (like, say, Na and F), the bond is ionic. If there's a small distinction (like C and H), that's covalent. there is not any not problem-free and quick rule for what the cutoff is between covalent and ionic bonds, in spite of the indisputable fact that that is in many circumstances common that bonds with electronegativity transformations > a million.fifty 4 are ionic, because the Si-O bond has a a million.fifty 4 distinction and that is about 50% ionic, 50% covalent.

2016-11-23 17:10:09 · answer #2 · answered by ? 4 · 0 0

Bonded Atoms

2016-10-29 04:44:34 · answer #3 · answered by ? 4 · 0 0

they share their electrons and protons that is their ionic bond and they will share their negative charges there they form covalent bond.

2007-04-13 04:31:04 · answer #4 · answered by Jeniv the Brit 7 · 0 0

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